Sheet-folding machine, especially for packaging cases made of corrugated cardboard, after they have been produced and printed.

It incorporates advancing (10) and folding (22) belts which are maintained at the exact cycle of the machine by means of pulleys (14) provided with recentering fingers (15). The conveyor belts are provided with suction elements (19), and the folding belts are provided with push-studs (25) arranged to correspond to the turned-down portions (5) to be folded.

Patent
   4614512
Priority
Feb 04 1982
Filed
Jul 08 1985
Issued
Sep 30 1986
Expiry
Sep 30 2003
Assg.orig
Entity
Large
65
6
all paid
1. Apparatus for folding sheets (1) having flaps (5) each having fold lines (2), comprising
(a) a conveyor (10, 11) for sheets to be folded, provided with means (4, 14, 15) enabling said sheets to be advanced and means (19, 20) for retaining central portions (9) of said sheets flat on said conveyor for advancement in precise correspondence therewith; and
(b) lateral push folding means at least a portion of which is constituted by at least one endless spiral belt (22) directly carrying push studs located along said at least one belt in correspondence with successive sheets on said conveyor, and having support faces (26) in alignment with said fold lines;
(c) said at least one endless belt (22) being disposed at an angle to said conveyor such that said push studs progressively push down said flaps of said sheets to be folded, and having means (23, 24, 115) enabling it to advance at the same predetermined speed as said sheets to be folded, whereby misfolding of said sheets is prevented.
2. Apparatus for folding sheets (1) having flaps (5) each having fold lines (2), comprising
(a) a conveyor (10, 11) for sheets to be folded, provided with means (4, 14, 15) enabling said sheets to be advanced and means (19, 20) for retaining central portions (9) of said sheets flat on said conveyor for advancement in precise correspondence therewith; and
(b) lateral push folding means at least a portion of which is constituted by at least one straight endless belt (221) directly carrying push studs (251) having rounded shapes located along said at least one belt in correspondence with successive sheets on said conveyor, said at least one endless belt (221) being disposed at an angle to said conveyor such that said push studs progressively push down said flaps of said sheets to be folded, said endless belt (221) moving on end pulleys (231, 241) whose axes are parallel to a starting position of said flaps (5) and located on either side of said fold lines (2), said pulleys enabling said endless belt (221) to advance at the same predetermined speed as said sheets to be folded, whereby misfolding of said sheets is prevented.
3. Apparatus according to claim 1 or 2, wherein said conveyor comprises at least one belt (10, 11) perforated with holes (4) distributed uniformly in a longitudinal direction, the center-to-center distance between said holes being such as to allow them to engage fingers (115) uniformly distributed on at least one drive pulley (14), said fingers having lateral profiles substantially in the form of portions of an involute of a circle.
4. Apparatus according to claim 3, wherein said means (19, 20) for retaining central portions of said sheets comprises means for applying suction through said holes (4) in order to flatten said sheets (1) on said conveyor belt.
5. Apparatus according to claim 2, wherein said push studs (251) have semi-circular sections.

This application is a continuation of application Ser. No. 453,564, filed Dec. 27, 1982 and now abandoned.

The present invention relates to a sheet-folding machine, and more particularly to a machine intended for folding packaging cases made of corrugated cardboard after they have been produced and printed.

The widening use of packaging cases made of corrugated cardboard requires very high production rates. Present machines are capable of producing cases at a very high rate from a cardboard sheet representing the spreadout case to be obtained. At the present time, these machines are continuous machines in which the blank passes in succession from one station to the next, without any intermediate storage. In this way, the sheet is printed, cut out to form the turned-down portions or the auxiliary cut-out portions, glued on its closing tab, and then folded and bonded up to the final station for making up into bundles for delivery to the user.

In the folding part, the transverse end panels of the blank are folded inwards and bonded to one another. Folding is generally carried out by moving the cases along an endless conveyor (with belts, chains, etc.), the central part of the blank being retained firmly between the two folding lines of the latter, the end panels bearing on inclined bars which force them to lift up or descend, depending on whether folding takes place from above or from below. The end panels are thus arranged vertically, and they are, in general, subsequently picked up by other bars which complete the folding flat.

Instead of inclined bars, it is possible to use other devices, such as:

(a) straight or spiral movable belts which have the same function,

(b) oscillating flaps which are driven in a cyclical movement and which push the panels at the rate at which they pass, until they are folded flat,

(c) rotating spiral bars, such as those described in U.S. Pat. No. 4,254,692, the characteristic of which is to possess a single point of contact with a corresponding panel.

All these known devices have disadvantages, among them the following:

(1) Use of endless conveyors of the conventional type, combined with the lightness of the sheets, means that the cases to be folded often do not pass through the folder in perfect synchronism with the general movement of the machine. This causes disturbances both in the operation of the folder and in that of the machine located immediately downstream of the latter.

(2) The devices cause a relative movement, in the direction of travel, between the folding elements and the cases to be folded. This relative movement causes these cases to be braked, further aggravating the folding defects in the cycle of the cases.

(3) Most of these folding elements act by bearing on the front part of the lateral panels, so that folding takes place slightly crosswise, and badly folded cases are obtained in the end. To overcome this last disadvantage, it has already been proposed, e.g., in German Patent Application No. 2,911,969, to use for auxiliary thrust movable elements driven by an endless chain, but this type of device requires a very complex mechanism which is incapable of allowing sufficient speed of advance to be obtained.

The purpose of the present invention is to provide a solution to the disadvantages of these known devices. The folder according to the invention is equipped with means contributing to carrying out the folding operation in the cycle of the general movement of the machine. Advantageously, for example, the said folder is provided with folding elements consisting of endless belts or the like, which advance at the cycle of the machine and which are provided with push-studs or the like arranged to correspond to the panels to be folded.

The invention will be better understood by means of the following description of several exemplary embodiments, with reference to the attached drawings in which:

FIG. 1 is a diagrammatic perspective view of a first embodiment of a folder according to the invention,

FIG. 2 is a longitudinal section through one of the ends of the conveyor equipping the folder of FIG. 1,

FIG. 3 is a partial diagrammatic view of a second embodiment of the folder according to the invention,

FIGS. 4, 5 and 6 are diagrammatic sections showing the successive phases in the folding of a cardboard blank by means of the folder of FIG. 3,

FIG. 7 shows, very diagrammatically and partially, a third embodiment of the folder according to the invention, and

FIGS. 8, 9 and 10 are diagrammatic sections similar to FIGS. 4, 5 and 6 showing the successive phases in the folding of a blank by means of the folder of FIG. 7.

Referring, first of all, to the general view of FIG. 1, the cardboard blanks are introduced into the machine in the form of sheets 1 provided with two longitudinal marks (2, 3) obtained previously by compressing or "creasing" the cardboard. These marks form hinges about which the turned-down portions 5 and 6 will be folded.

Folding is carried out as a result of longitudinal movement of the blank 1 along the folder. When the turned-down portions (5, 6) encounter folding elements, consisting here of two conventional spiral bars (7, 8), these turned-down portions are rotated about the corresponding hinges (2, 3) 180° to the right and to the left, respectively, until the turned-down portions are superposed above the central part 9 of the blank 1, the whole of this first part of the device being highly conventional.

According to the invention, the blanks 1 are then transported through the folder by means of a conveyor comprising two endless belts (10, 11) perforated with holes 4 distributed uniformly in a longitudinal direction, as may be seen clearly in FIG. 2. The center-to-center distance between these holes 4 is adjusted so as to allow them to engage in the corresponding upstream (12, 13) and downstream (14, 15) end pulleys, each of the said pulleys consequently being provided with uniformly distributed fingers 115.

Each finger 115 has a pointed shape, albeit having a flattened upper portion 17, and has lateral profiles 16 substantially in the form of portions of an involute of a circle, as may be seen in FIG. 2.

The upstream pulleys 12 and 13 are mounted loosely, while the downstream pulleys 14 and 15 are fixed to a shaft 18 driven to rotate as a result of the general movement of the machine. The drive pulleys 14 and 15 thus ensure that the conveyor belts 10 and 11 advance at the cycle of the machine, while the holes 4, in combination with the associated fingers 115, allow permanent recentering of the said belts, continuously correcting their movement, especially counter to their fluctuations in length, and thereby guaranteeing that they are synchronized perfectly with the cycle. Holes 4 also serve as suction orifices, making it possible to guarantee that the central part 9 of the blanks 1 is laid on the active parts of the conveyor belts 10 and 11, and therefore to guarantee that they are advanced at the cycle of the machine, this being one of the essential aims of the invention. Consequently, a suction box 19 and 20 respectively, connected to a vacuum pump by pipes 21 (FIG. 2), is located under each conveyor belt (10, 11).

The folder which has just been described has the advantage of guaranteeing the advance of the sheets at the cycle of the machine. However, it makes use of conventional folding elements (7, 8) which have the disadvantage, with some types of cardboard, that there is a risk that the turned-down portions will be folded slightly crosswise. Two embodiments according to the invention, using new folding elements which though being more expensive do not give rise to this disadvantage, will now be described.

In general terms, these embodiments make use of push-studs which are moved, by means of belts, chains, cables or the like, at the cycle of the machine, i.e., exactly the same theoretical speed as the sheets to be folded, bearing progressively on the turned-down portions to be folded. In this way, by placing several devices end to end, it is possible to achieve folding of the turned-down portions from 0 to 180°. The location of the bearing points of the studs on each turned-down portion can be adjusted in such a way that they do not bear on its front part, as is the case, for example, with the folding bars of the prior art. Briefly, with this type of device, everything takes place as though two slaves were folding the two turned-down portions by pushing laterally on these, while moving in the same direction as the cases and at the same speed. Such a result could be achieved by means of oscillating flaps which would be carried by an auxiliary conveyor moving at the speed of the conveyor supporting the sheets, but such a device would be much more complex to produce than the push-stud devices with which the invention is concerned.

Referring now to FIGS. 3 to 6 as a whole, the folding bars 7 and 8 of FIG. 1 are replaced, in this embodiment, by an assembly of endless spiral belts 22, each rotating at the cycle of the machine about end pulleys (23, 24) driven by the pulleys 12 of the conveyor 10 and carrying groups of push-studs 25 at regular intervals corresponding to the distance between two blanks on the conveyor 10.

As may be seen in the sectional views of FIGS. 4 to 6, the belts 22 are positioned in such a way that their "forward" or active side is aligned with the associated hinge 2, as indicated by the extension shown by broken lines, and the studs 25 have such a cross-section that the same is true of their supporting face 26. The belts 22 are provided with identical holes 4 as the conveyor belts 10 and 11 of FIG. 1, and the end pulleys 23 and 24 are likewise provided with correcting fingers 115 identical to those described above with reference to FIG. 2. Moreover, an assembly of small intermediate pulleys 27 makes it possible to maintain the belt 22 on the desired spiral path, allowing the turned-down portion 5 to be folded progressively on the central part 9 of the blank.

Folding carried out by each belt 22 is adjusted by acting on the relative positions of the pulleys 23, 24 and 27. In the example under consideration, the belt 22 folds the turned-down portion 5 through an angle of approximately 90°, and consequently the end pulleys 24 and 23 have the positions shown respectively in FIGS. 4 and 6. Folding takes place progressively, as appears clearly from the three successive phases shown diagrammatically in FIGS. 4 to 6.

It goes without saying that the folder of FIG. 3 incorporates at least one pair of belts 22 which is located upstream of that illustrated and which is responsible for carrying out the folding from 0 to approximately 90°, and, if necessary, another pair downstream to complete the folding to 180°. The respective positions of the end pulleys are adjusted as a function of the folding desired, and are easily determined, as in FIGS. 4 and 6, so that the upstream pulley ensures, together with a stud 25, the position of initial folding and so that the downstream pulley ensures, together with a stud 25, the position of final folding.

In a simplified alternative form, it would very easily be possible to install only a single pair of belts 22 to carry out folding according to FIGS. 4 to 6, and to provide for the rest of the folding operation conventional elements such as folding bars.

FIGS. 7 to 10 show an embodiment close to that of FIG. 3, but using non-spiral, i.e., straight belts 221, which are provided with push-studs 251 having a cross-section which is rounded, in this particular case semi-circular. As illustrated in FIGS. 7, 8, 9 and 10 (corresponding respectively to FIGS. 3, 4, 5 and 6 in the preceding embodiment), the folding carried out is adjusted by means of the automatic parallel movement of the upstream guide pulley 241 and downstream guide pulley 231.

In the example illustrated, in which folding is carried out from 90 to 180° approximately, the axes of the end pulleys (241, 231) are vertical and are located respectively on the far side and on the near side of the folding axis 2, i.e., on either side of the latter in a horizontal plane. To carry out folding from 0 to 90°, an identical assembly, but with end pulleys having horizontal axes located on either side of the folding axis 2 in a vertical plane, will be placed upstream of the assembly (221, 231, 241) illustrated.

The invention is not limited to the examples which have just been described. Other forms of push-studs carried by other forms of belts, cables or chains, e.g., push-studs consisting of discs rotating on themselves and carried by a ball cord, could easily be used.

Capdeboscq, Bernard

Patent Priority Assignee Title
10117787, Apr 09 2010 The Procter & Gamble Company Methods and apparatuses for tucking side panels of absorbent articles
10118754, Nov 22 2011 Kimberly-Clark Worldwide, Inc Method of folding pant-like disposable absorbent garments in a chute
10668685, Jul 02 2014 EMBA HOLDING AKTIEBOLAG Folding arrangement, folding machine and method for folding
10882713, Jun 24 2015 Zuiko Corporation Continuous body folding device and folding method
11123230, Nov 22 2011 Kimberly-Clark Worldwide, Inc. Method of folding pant-like disposable absorbent garments in a chute
11285684, Nov 24 2014 Bobst Mex SA Method and device for correcting the folded position of a blank in a folder-gluer
11479008, Oct 24 2014 CURT G JOA, INC Apparatus and method for folding
11618993, Dec 30 2018 MIELE & CIE KG Width-folding system and method for creating width-folds in an article of laundry
11802009, Nov 05 2020 COMERCIAL INDUSTRIAL MAQUINARIA CARTON ONDULADO, S.L. Trolley device for conveying laminar elements and conveyor assembly
4682977, Jul 21 1986 Paper Converting Machine Company Apparatus for folding spaced segments of web material
4738440, Aug 22 1984 Laundry folding unit
4795416, May 24 1983 Sequa Corporation Apparatus for C-folding paper with variable spacing
4834696, Sep 30 1987 Marquip, Inc. Folding of paperboard sheets and the like
4976672, Mar 03 1989 WARD HOLDING COMPANY, INC , A CORP OF DE Squaring folded container blanks
5092827, Sep 28 1989 SOUTHERN TOOL COMPANY, INC D B A WESTERN SLOPE INDUSTRIES Apparatus for folding paper boxes
5094658, Mar 05 1991 F.L. Smithe Machine Company, Inc. Vacuum side-folder section for envelope blank folding apparatus
5178601, Jan 16 1990 TETRA ALFA HOLDINGS S A Apparatus for folding an edge on a continuous material web
5184998, Apr 08 1991 Volk Packaging Corporation Corrugated cardboard or chipboard carton forming machine
5486152, Feb 10 1993 Lever Brothers Company, Division of Conopco, Inc. Carton closing plough and process
5714027, Mar 22 1996 The Procter & Gamble Company Method of folding and handling a web of material in a continuous operation
5779232, Dec 24 1993 Koenig Bauer-Albert Aktiengesellschaft Method and device for the production of a longitudinal fold
5779614, Sep 05 1995 M & D Balloons, Inc. Method and apparatus for folding toy balloons
5797831, Aug 25 1995 ANTARES CAPITAL LP, AS SUCCESSOR AGENT Vacuum hold down folder/gluers and process
5800329, Feb 04 1994 Berg Industries AB Apparatus for folding sheet blanks by endless conveyor belts
5807228, Jan 13 1995 F L SMITHE MACHINE COMPANY, INC Sheet folding method and apparatus
5921908, May 30 1997 ORMAN B V Folding device and method for folding flat pieces of laundry in longitudinal direction
5997459, Nov 06 1994 Alfred Klett KG Device for processing a blank transported along a conveyor path at a predetermined conveying speed
6027440, Aug 14 1997 Alliance Machine Systems International, LLC Pneumatic sheet material hold down conveyor system
6070396, Nov 27 1996 SPECIALTY MACHINERY, INC Carton folding apparatus
6099450, Jul 09 1998 BOBST, S A Squaring carriage with pneumatic squaring fingers
6113526, Dec 19 1996 BANK ONE, N A Bag-folding apparatus
6210309, Jan 13 1995 F L SMITHE MACHINES COMPANY Sheet folding method and apparatus utilizing convex folder and guide
6371901, Dec 15 1999 SHANGHAI ELECTRIC GROUP CORPORATION Linear folding device and method
6565501, Nov 01 2000 Procter & Gamble Company, The Method and apparatus for folding a web
6572520, May 17 2000 WINKLER + DUNNEBIER GMBH Apparatus for transporting envelope blanks in an envelope making machine
6673002, Oct 05 2001 HEWLETT-PACKARD DEVELOPMENT COMPANY L P Sheet folding apparatus with pivot arm fold rollers
6711875, Nov 01 2000 CFS WEERT B V Form-fill-seal machine
6712748, Nov 01 2000 The Procter & Gamble Company Method and apparatus for folding a web
6723035, Sep 28 2001 Kimberly-Clark Worldwide, Inc Method of tucking side panels with side panel fold location control
6729105, Apr 04 2001 G.D S.P.A. Unit for packaging products
6776316, Sep 28 2001 Kimberly-Clark Worldwide, Inc Method of tucking refastenable side seams
6808479, Oct 05 2001 HEWLETT-PACKARD DEVELOPMENT COMPANY L P Thick media folding method
6837841, Sep 30 2002 HEWLETT-PACKARD DEVELOPMENT COMPANY, L P Method and apparatus for sheet folding
6855101, Oct 05 2001 HEWLETT-PACKARD DEVELOPMENT COMPANY L P Sheet folding apparatus
6863644, Aug 24 2001 LBP Manufacturing LLC Beverage container holder
6878104, Oct 05 2001 HEWLETT-PACKARD DEVELOPMENT COMPANY L P Variable media thickness folding method
6922971, Nov 01 2000 CFS Weert B.V. Form-fill-seal machine
6922972, Nov 01 2000 CFS Weert B.V. Form-fill-seal machine
6939284, Oct 05 2001 HGST NETHERLANDS B V Sheet folding apparatus with rounded fold blade
7008363, Oct 31 2003 Nordson Corporation Apparatus and methods for folding a nonbonded nonwoven web
7069970, May 16 2000 Kimberly-Clark Worldwide, Inc Apparatus for forming a lap seam
7082737, Nov 01 2000 CFS Weert B.V. Form-fill-seal machine
7137941, Aug 24 2004 FOLDER-GLUER TECHNICAL SERVICES GROUP, LLC Apparatus and method for forming a hemmed edge on carton blanks
7214174, Oct 31 2003 Nordson Corporation Apparatus for folding a nonbonded nonwoven web
7270631, Sep 28 2001 Kimberly-Clark Worldwide, Inc Method of tucking side panels with side panel fold location control
7513859, May 07 2004 manroland AG Folding device for printing presses or folders
7708679, Jan 17 2007 Bobst S.A. Folding device for a folding and gluing machine
7842021, Jun 14 2006 3M Innovative Properties Company Absorbent article with seal and method of manufacturing
8033975, Sep 02 2005 EMBA HOLDING AKTIEBOLAG Folding unit and method of folding corrugated cardboard sheet
8870732, Apr 09 2010 The Procter & Gamble Company Methods and apparatuses for tucking side panels of absorbent articles
8882648, Dec 20 2010 The Procter & Gamble Company Method and apparatus for assembling and folding absorbent articles
9017241, Apr 09 2010 The Procter & Gamble Company Methods and apparatuses for tucking side panels of absorbent articles
9079728, Sep 12 2012 LBP Manufacturing LLC Feeder system for beverage container holder process
9676570, Sep 12 2012 LBP HOLDINGS LLC; Sabert Corporation Feeder system for beverage container holder process
9918881, Nov 22 2011 Kimberly-Clark Worldwide, Inc Method of folding pant-like disposable absorbent garments in a trough
Patent Priority Assignee Title
2785609,
3130650,
3807289,
3838771,
3927875,
4022457, Jun 09 1975 Pitney-Bowes, Inc. Sheet folding device
/
Executed onAssignorAssigneeConveyanceFrameReelDoc
Jul 08 1985S. A. Martin(assignment on the face of the patent)
Date Maintenance Fee Events
Mar 30 1990M173: Payment of Maintenance Fee, 4th Year, PL 97-247.
Apr 06 1990ASPN: Payor Number Assigned.
Mar 14 1994M184: Payment of Maintenance Fee, 8th Year, Large Entity.
Nov 06 1997M185: Payment of Maintenance Fee, 12th Year, Large Entity.


Date Maintenance Schedule
Sep 30 19894 years fee payment window open
Mar 30 19906 months grace period start (w surcharge)
Sep 30 1990patent expiry (for year 4)
Sep 30 19922 years to revive unintentionally abandoned end. (for year 4)
Sep 30 19938 years fee payment window open
Mar 30 19946 months grace period start (w surcharge)
Sep 30 1994patent expiry (for year 8)
Sep 30 19962 years to revive unintentionally abandoned end. (for year 8)
Sep 30 199712 years fee payment window open
Mar 30 19986 months grace period start (w surcharge)
Sep 30 1998patent expiry (for year 12)
Sep 30 20002 years to revive unintentionally abandoned end. (for year 12)